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Updated: Jan 15, 2026

Automated Imaging and Analysis for the Quantification of Fluorescently Labeled Macropinosomes
Published on: August 24, 2021
Macropinocytosis: regulated coordination of endocytic and exocytic membrane traffic events
Sestina Falcone1, Emanuele Cocucci, Paola Podini
1University of Milan, Department of Preclinical Sciences, via GB Grassi 74, 20157 Milan, Italy.
Insights
Macropinocytosis rate increases in human dendritic cells, regulated by calcium. Macropinosomes, unlike endosomes, undergo calcium-dependent exocytosis, preventing cellular overload.
Area of Science:
- Cell Biology
- Immunology
Background:
- Macropinocytosis is a cellular process for bulk uptake, primarily studied for antigen presentation.
- Early membrane traffic events during macropinocytosis remain poorly understood.
Purpose of the Study:
- To investigate the early membrane traffic events and regulation of macropinocytosis in human dendritic cells.
- To characterize the behavior and properties of macropinosomes.
Main Methods:
- Utilized human dendritic cells treated with latex beads or dextran as cargo markers.
- Monitored intracellular calcium concentration ([Ca2+](i)) changes.
- Observed membrane traffic events including exocytosis of enlargeosomes and macropinosomes.
Main Results:
- Macropinocytosis rate increases shortly after cargo application, dependent on a slow intracellular calcium rise.
- Exocytosis of enlargeosomes precedes and accompanies macropinocytosis, partially compensating for plasma membrane internalization.
- Macropinosomes exhibit calcium-dependent exocytosis, reaching an equilibrium to prevent cellular overload.
- Ionomycin-induced large calcium increases trigger rapid macropinosome exocytic regurgitation, while endosomes are unaffected.
Conclusions:
- Macropinocytosis rate in dendritic cells is regulated and increases over time.
- Macropinosomes are distinct from endosomes, possessing unique membrane properties and undergoing regulated exocytosis.
Abstract:
Macropinocytosis, a form of bulk uptake of fluid and solid cargo into cytoplasmic vacuoles, called macropinosomes, has been studied mostly in relation to antigen presentation. Early membrane traffic events occurring in this process are, however, largely unknown. Using human dendritic cells we show that a marked increase in the rate of macropinocytosis occurs a few minutes after application of two markers (small latex beads or dextran), depends on a slow intracellular Ca2+ concentration ([Ca2+](i)) rise that precedes the PI3K-dependent step, and is preceded and accompanied by exocytosis of enlargeosomes compensating in part for the macropinocytic plasma membrane internalization. Unexpectedly, macropinosomes themselves, which share markers with endosomes, undergo Ca2+ -dependent exocytosis so that, after approximately 20 minutes of continuous bead or dextran uptake, an equilibrium is reached preventing cells from overloading themselves with the organelles. Large [Ca2+](i) increases induced by ionomycin trigger rapid (<1 minute) exocytic regurgitation of all macropinosomes, whereas endosomes remain apparently unaffected. We conclude that, in dendritic cells, the rate of macropinocytosis is not constant but increases in a regulated fashion, as previously shown in other cell types. Moreover, macropinosomes are not simple containers that funnel cargo to an endocytic pathway, but unique organelles, distinct from endosomes by their competence for regulated exocytosis and other membrane properties.
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